• <tr id="yyy80"></tr>
  • <sup id="yyy80"></sup>
  • <tfoot id="yyy80"><noscript id="yyy80"></noscript></tfoot>
  • 99热精品在线国产_美女午夜性视频免费_国产精品国产高清国产av_av欧美777_自拍偷自拍亚洲精品老妇_亚洲熟女精品中文字幕_www日本黄色视频网_国产精品野战在线观看 ?

    A general model for trailing edge serrations simulation on wind turbine airfoils

    2021-09-17 09:05:04HuijingCaoMingmingZhangYinanZhangTengZhou

    Huijing Cao ,Mingming Zhang ,d,?,Yinan Zhang,Teng Zhou

    a Institute of Engineering Thermophysics,Chinese Academy of Sciences, Beijing 100190, China

    b The Key Laboratory of Wind Energy Utilization of CAS, Beijing 100190, China

    c University of Chinese Academy of Sciences, Beijing 10 0 049, China

    d Dalian National Laboratory For Clean energy, Chinese Academy of Sciences, Dalian 116023, China

    ABSTRACT Trailing edge serrations (TESs) are capable of noticeably suppressing the turbulent trailing edge noise induced by rotating wind turbine blades and become an integral part of a blade.However,the challenges involved in the dimensional design of serration height 2 h,wavelength λ and flap angle ? are yet to be dealt with in a satisfactory manner.To address the problem,a general model for simulating the effects of serrations on the hydrodynamic and aeroacoustic performance is proposed due to its ease of use and relatively low requirements for user input.The solid serrations are replicated by momentum sources calculated by its aerodynamic forces.Then,a case relevant to wind turbine airfoil is examined,a hybrid improved delay detached eddy simulation (IDDES) method coupled with FW-H integration is deployed to obtain the flow features and far-field sound pressure level.It is found that the modeling method could reproduce the flow field and noise as serrated airfoil.

    Keywords:Wind turbine airfoil Trailing edge serrations Trailing edge noise Modeling method

    The aeroacoustic noises caused by blade rotating at high wind speed are prominent and are the main noise source of a wind turbine [1] .As the wind turbines are becoming nearer to residential areas,complaints from local people are also becoming more universal,which brings great economic loss to turbine operators.More severely,the noise produced by blades has a negative influence on local residents’ life.Besides,in order to address the noise problem,the tip speed is often restricted during the process of blade design,negatively influencing the power output of wind turbine.

    Therefore,it becomes increasingly important and urgent to resolve the aeroacoustic noise problem of wind turbine blade.The wind turbine airfoil,as the basic aerodynamic element of blades,plays a dominated role in the generation of aeroacoustic noise.For this purpose,effective measures are needed to be adopted to suppress the aerodynamic noise of the airfoil.In recent years,the novel trailing edge serrations (TESs),inspired by the silent owl wing,have received extensive attention in terms of effectiveness,cost,production,and installation.Undoubtedly,this bionic configuration may solve the aforementioned aeroacoustic problems of large-scale wind turbine blades.

    In recent years,a large number of experimental and numerical results showed that the TESs installed on the two-dimensional airfoils achieved remarkable reduction effect and were gradually put into application on the three-dimensional wind turbines blades.Oerlermans et al.[2,3] firstly applied the serrated trailing edge technique to a 2.3 MW wind turbine with an impeller diameter of 96 m.Field measurement found that blades with serrated trailing edges can reduce noise by about 3 dB compared to the baseline blade.Lee and Lee [4] installed TESs on a 10 kW wind turbine,and achieved significant noise reduction of up to 5 dB(A) in field tests,which was attributed to the suppression of trailing edge bluntness noise by serrations.Lately,Ryi and Choi [5] measured the noise of a 10 kW wind turbine model in the acoustic wind tunnel.It was observed that noise reduction frequency was in the range of 400 Hz to 6 kHz and skewed serrations were superior to normal serrations by achieving extra 0.5 dB noise reduction.

    Fig.1.Sketch of the turbulent flow passing a serration.

    Although the application of the TESs has achieved satisfying noise reduction effects,the selection of the size is only based on experimental experiences,lack of optimization design methods to fully exert its advantages in terms of noise reduction.The primary cause is lack of a modeling method to replicate the serration effects on the aerodynamic noise and flow field.To this end,based on the two-dimensional symmetrical NACA0018 airfoil at low Reynolds number,a novel modeling method [6] was previously developed by replacing solid serrations with momentum sources,which was capable of reproducing the flow field results affected by serrations.However,the asymmetrical structure of the wind turbine airfoil operated at the high Reynolds number leads to the flow field characteristics being quite different from the previous airfoil.Therefore,it is necessary to improve previous modeling method to be adapted to high Reynolds number and apply it on the wind turbine airfoils to study the noise reduction effect of serrations.

    To authors’ knowledge,this paper firstly utilized the computational fluid dynamics method to estimate the aerodynamic noise produced by serrated airfoils at high Reynolds number.The improved delay detached eddy simulation (IDDES) method was used to obtain the instantaneous turbulent information in the flow field and the Ffowcs Williams-Hawking (FW-H) acoustic analogy method was deployed to predict the aerodynamic noise.And the current work focuses on the accuracy of the developed modeling method and studies the effects of serrations on the flow field and aeroacoustics.

    Thus,this study utilized the improved modeling method to simulate the flow field and predict the noise,which was benchmarked against the fully resolved serrated airfoil.

    The core behind the modeling method is to replace the solid serration by adding the momentum source terms,so as to replicate the flow field affected by serrations.The key point of the method is to accurately obtain the aerodynamic forces (mainly lift and drag force).Therefore,the lift prediction formula for serrations proposed by Llorente and Ragni [7,8] is used in the manuscript.The linear thin airfoil theory is adopted to integrate the lift coefficients of serrations,which can be formalized by the following equation:

    where theβ,candlsdenote the angle between the TES and the local velocity vector,the airfoil chord and the effective length of serrations.With Eq.(1),the lift coefficient of serrations can be easily predicted and agrees well with the numerical [7] and experimental [8] data.By the orthogonal decomposition,the pressure drag coefficient can be obtained byCdpressure=Cl·tanα.In addition,the classical boundary layer theory [9] is used to predict the viscous drag for turbulent flow passing the serrations.Fig.1 shows the sketch of the turbulent flow passing the flat-plate serration.To simplify the model,the flow passing the upper and lower surface of the serrated airfoil can be approximated as fully developed turbulent flow past a flat plate.Thus,when the Reynolds number is below 6×106,the friction drag coefficient at a fixed stream-wise location can be expressed as [9]:

    wherelrepresents the flow distance.The total drag coefficient is calculated by integrating the length and width over the serration surface of two sides,which can be written as

    It is noticed that the estimation method for the aerodynamics of serrations is not fixed,which may change with the flow condition and can be replaced by more accurate estimation formula.

    In a finite volume context,the total force acting on the fluid is expressed by:

    whereViis the grid cell volume.The momentum equation at each cell where the model is applied can be expressed by:

    This study is mainly focused on the flow characteristics of serrated airfoil at high Reynolds number,which requires a huge amount of grid.The IDDES [10],a hybrid modeling approach that combines features of Reynolds-averaged Navier–Stokes (RANS)simulation and large-eddy simulation (LES) method,provides a more flexible and convenient scale-resolving simulation model and is suitable to solve complex turbulent flows around the wind turbine airfoil at high Reynolds number [11,12].

    Fig.2.Operating condition of referenced sections of a 1.5 MW horizontal axis wind turbine [13].

    The governing equations of the shear stress transport (SST) IDDES model can be written as:

    Here,k,μ,μt,τijandSijdenote the turbulent kinetic energy,molecular viscosity,turbulent viscosity,stress tensor and strain tensor,respectively.The IDDES length scale in Eq.(8) reads as follow:

    where

    lRANS:length scale of RANS method,constantCμ=0.09;ωrepresents the specific dissipative rate;

    lLES:length scale of LES method,CDESΔ;theΔdenotes the grid length scale;

    fb:the elevating-function,which is aimed at preventing the reduction of the RANS Reynolds stresses,and the details are presented in Ref.[10].

    A wind turbine with variable speed and pitch control [13] is selected as a reference and its detailed information is shown in Table 1.The Reynolds number distribution along the blade calculated by the blade element theory (BEM) is shown in Fig.2.According to the field noise measurement results [1],the prominent noise of the wind turbine is mainly centered at the span-wise location of 80%-90% of the blade,where it is an airfoil with a thickness of 21%.It is found that the operating Reynolds number is around 3×106when reaching the rated wind speed.

    Table 1 Operating condition of a reference 1.5 MW horizontal axis wind turbine.

    Table 2 The aerodynamic forces of experimental and numerical results.

    Fig.3.Parameters of the serration geometry. a Sketch of the trailing edge serration. b Serrations with flap angle.

    To this end,the DU212 airfoil with high aerodynamic performances developed by Delft University is chosen in this manuscript.In order to study the noise characteristics at the rated wind speed,the Reynolds numbers of 3×106is selected for the research.Meanwhile,the airfoil near the tip of the blade operates at small angles of attack,so the angle of attack in the manuscript is chosen 2?and this flow condition is completely consistent with Pires’ experiments [14].According to the noise reduction law for serrations proposed by Gruber et al.[15],a serration size with 2h/c=0.15 andλ/(2h)=0.5 is selected to satisfy the noise reduction criterion.Due to the deflection angle at the trailing edge of the wind turbine airfoil,the flap angle of the serration is not installed horizontally.Experiments by Vathylakis et al.[16] showed that,when the flap angle coincided with the deflection angle of the airfoils,it is more conducive to noise reduction.Therefore,the flap angle installed at the serration is set at 5?and the sketch of serrated airfoil is shown in Fig.3.The origin was set at the central location of the trailing edge.Thex-axis is aligned with the stream-wise direction;thez-axis coincides with the airfoil trailing edge.

    Fig.4.Sketches of computational mesh system. a Sketch of computational domain. b Mesh around the airfoil and serration.

    Fig.5.Distribution of static pressure coefficient along chordwise direction.

    Fig.6.ωx contours of virtual and physical TES. a Physical TES. b Virtual TES.

    Figure 4a indicates the sketch of computational domain,a rectangle domain is built up.The inlet is placed 15caway from the airfoil,and the outlet is placed 20cdownstream of the airfoil.A C-type topological structure around the airfoil is adopted and the mesh node is clustered near airfoil surfaces by a geometric expansion.The dimensions of the first layer grids in three directions areΔymax=0.015 mm,Δxmax=2 mm andΔzmax=2 mm.Eventually,the structured grid system withΔy+<1,Δx+<100,Δz+<100 and the growth ratio=1.1 is chosen,satisfying the requirement for IDDES simulation recommended in Ref.[17].Figure 4b illustrates the lateral and stream-wise slices of the surface mesh as well as the mesh of the TES.The structural mesh of the physical TES is divided by a Y-type topology,and the mesh density of the TES is close to that of the airfoil surface,so that grid resolution at the surface of TES could remain the same as the airfoil surface.Consequently,overall amounts of grids for the baseline and serrated airfoils are 1.2 and 1.8×107,respectively.In the IDDES simulation,pressure-based solver coupled with the semi-implicit method for pressure linked equations (SIMPLE) velocity scheme was employed.The pressure and momentum were discretized with the secondorder and central difference scheme,and the second order implicit scheme was adopted in the time discretization.The time step was set small enough at 2×10?5s to ensure the Courant number was less than 1.

    Fig.7.Contours of time-averaged velocity components of the virtual and physical TES at x/ (2h)=0.5.a Mean u of physical TES.b Mean v of physical TES.c Mean w of physical TES. d Mean u of virtual TES. e Mean v of virtual TES. f Mean w of virtual TES.

    Deploying above methods,the hydrodynamic and aeroacoustic parameters of baseline and serrated airfoils are obtained.To validate the accuracy of our simulation method,the numerical results are compared with experimental result [14].Figure 5 displays the comparison of the distribution of static pressure coefficient along chord-wise direction whenα=2?andRe=3×106.The numerical results from present model and the experimental results are presented,where the static pressure coefficient is defined asCp=(p?pr)/(0.5ρU2),wherepandprdenote the wall pressure and static pressure.Clearly,the computational results are in good agreements with experimental ones [14].From another aspect,the aerodynamic forces at the same Reynolds numbers and angle of attack are listed in Table 2.Actually,the lift and drag coefficients are coincident with those of experimental study.Sufficient comparisons of the pressure coefficient and aerodynamic forces suggest that the IDDES results in this manuscript are reliable.

    As illustrated in Ref.[6],a pair of stream-wise vortex with opposite rotating directions is detected,which is attributed to the pressure gradient between the suction and pressure side.Figure 6a shows the distribution of the stream-wise iso-vorticity(ωx=?w/?y??v/?x) contours at different stream-wise locations.It is shown that the vortex is generated at the serration root and then developed along the serration edge.As the vortex leaves the serration,it sheds along the stream-wise direction and its strength gradually decreases due to the dissipation.The contours of the stream-wise vorticity obtained from the modeling method are presented in Fig.6b.To intuitively detect the location of the vortex,the edge of the serration is plotted with dotted lines.It is shown that iso-vorticity contours of the virtual TES are in good agreement with that of the airfoil with physical TES.The strength of the vortex between serrations is identical to the shedding vortex from solid serration,further verifying the accuracy of the modeling method.Moreover,both the span-wise and vertical locations of vortex cores are also captured accurately by the new model.The modeling method could replicate the process of vortex production,evolution and dissipation due to viscosity and convection with the vortex from the upstream boundary layer.

    The contours of the time-averaged velocity components for the serrated airfoil at the middle slice of the serrationx/(2h)=0.5 are presented in Fig.7a-7c.It is found that the flow field near the trailing edge is greatly altered by the counter-rotating vortex.Driven by the pressure gradient between two sides,the fluid at the pressure side is rolled along the serration edge to the suction side,which generates an upward flow and eventually uplifts the boundary layer in serration gaps.Meanwhile,a complex distribution of thezvelocity between the serration is detected in Fig.7c.Specifically,on the pressure side,the fluid shrinks to the serration gap and exhibits an inward motion.On the suction side,the transported fluid is scattered to the serration edge and displays an outward motion.All these motions are driven by the counter-rotating vortex,resulting in the opposite span-wise motion between two sides.The contours of the velocity components obtained by the modeling method at the same locations are shown in Fig.7d-7f.It is observed that the modeled velocity contours are basically the same as that of serrated airfoil,suggesting that the proposed modeling method is high in precision.

    In order to quantitatively assess the precision of the model,the profile of time-averageduandvvelocity distribution parallel toyaxis atz=0.0375 m is plotted in the Fig.8.It is noticed that the deficit ofxvelocity at the serration root is obviously reduced when installing serrations.The cause contributing to the phenomenon is that the induced stream-wise vortex strengthens the energy exchange between the pressure and suction side and eventually reduces the deficit.As shown in Fig.8b,the upward flow is observed at the serration root,which enhances the fluid mixture between two sides.It is assumed that the reduction the trailing edge noise is associated with the upwash [6],which breaks up the large-scale vortex structures shedding from the upstream turbulent boundary layer,thereby suppressing the noise at the low-to-moderate frequency presented in Fig.9.Likewise,it is found that the velocity profile obtained by the modeling method almost coincides with the solid serration,quantitatively proving that the modeling method is suitable to replicate the flow field of serrated airfoils under high Reynolds number.

    Fig.8.Comparisons of mean u and v at serration root z=0.025 mm. a Mean u. b Mean v.

    The time domain sound pressure signal at the detection point can be obtained by solving the FW-H integral equation [18],and then the spectrum of the noise can be derived by the FFT analysis.The detection point is set above the trailing edge by a distance of 2c.The spectra of sound pressure level (SPL) for the baseline airfoil,physical and virtual TES are shown in Fig.9.It can be seen that the noise spectrum of the wind turbine airfoil under high Reynolds number presents a broadband characteristic.With the TESs installed,significant noise reduction at the frequency ranging from 1000 Hz to 3000 Hz is detected,and the noise spectrum calculated by the above modeling method is in good agreement with that of the physical TES.The directivity of the far-field sound pressure level is given to study the noise reduction effect by the TES at different azimuth angles.As is shown in Fig.10,the arc array with a diameter of 2ccovers an azimuthal angle ranging from -180?to 180?and the azimuthal angle between two detection point is 30?.It can be seen from Fig.10 that the overall sound pressure level(OASPL) of the airfoil presents a radiation characteristic of dipoles,which is specifically characterized by low noise on both sides and high noise on the upper side of the airfoil.With the TES installed,the noise is significantly suppressed and the maximal noise reduction is as much as about 3 dB.Above results indicated that the modeling method can be used for predicting the noise reduction effect of serrations and the accuracy could satisfy the need of engineering applications.

    On the whole,based on the above results of velocity,vorticity and noise spectrum,our proposed modeling method is capable of reproducing the flow field and sound pressure level results affected by the serrations.And the error is within the acceptable range of engineering application.With such method,the time and resources for calculating serrated airfoils can be greatly simplified.When simulating the noise reduction effect of different serration sizes or shapes,the method of adding extra momentum sources can omit the process of dividing the grid,which will facilitate the optimal design of the best serration size and speed up the industrial application.

    A modeling method for TESs suitable for high Reynolds number is proposed.The solid serrations are replaced by momentum source terms,which could omit the division serration grid.Deploying this modeling method,the hybrid IDDES method coupled with FW-H integration are used to obtain the flow field and the far field sound pressure.

    Fig.9.The sound spectra of the baseline airfoil,the virtual and physical TES.

    Fig.10.Directivity of the overall sound pressure level.

    As revealed from the flow field results,the change of flow field is attributed to the stream-wise counter-rotating vortex.An upwash is formed at the serration gap,which causes the fluid on the pressure surface transported to the suction side,thereby enhancing the energy exchange of the fluid between serrations.All these flow field changes contribute to a noticeable noise reduction at low-tomoderate frequency.Compared with the result of solid serration,it is found that the velocity and vorticity contours calculated by the modeling method are almost the same as solid serration.In addition,the model can accurately predict the noise spectrum of serrated airfoil.

    Without the model,the simulation of wind turbine blade with the TESs is very difficult because of the complex grid topology.This modeling method of serrations is a good way to solve the problem,which will promote the industry application of serrated airfoils.

    Declaration of Competing Interest

    The authors whose names are listed immediately below certify that they have no affiliations with or involvement in any organization or entity with any financial interest (such as honoraria;educational grants;participation in speakers’ bureaus;membership,employment,consultancies,stock ownership,or other equity interest;and expert testimony or patent-licensing arrangements),or nonfinancial interest (such as personal or professional relationships,affiliations,knowledge or beliefs) in the subject matter or materials discussed in this manuscript.

    Acknowledgments

    This work was supported by the National Natural Science Foundation of China (Grant No.51736008),“Transformational Technologies for Clean Energy and Demonstration”,Strategic Priority Research Program of the Chinese Academy of Sciences (Grant No.XDA21050303).

    一个人免费在线观看电影| 午夜福利欧美成人| 亚洲精品一区av在线观看| 两个人看的免费小视频| 亚洲欧美日韩卡通动漫| 国产高清有码在线观看视频| 丰满人妻一区二区三区视频av | 99久久久亚洲精品蜜臀av| 成人国产综合亚洲| 久久久精品大字幕| 精品久久久久久久人妻蜜臀av| 欧美成人免费av一区二区三区| 亚洲七黄色美女视频| 精品久久久久久久末码| 国产真实乱freesex| 亚洲人成网站在线播| 又爽又黄无遮挡网站| 久久久国产成人精品二区| 啦啦啦观看免费观看视频高清| 免费在线观看日本一区| 日韩免费av在线播放| 精品国产美女av久久久久小说| av视频在线观看入口| 成人鲁丝片一二三区免费| 免费av观看视频| 国产爱豆传媒在线观看| 久久久国产精品麻豆| 久久久国产成人免费| 亚洲av成人精品一区久久| 在线观看66精品国产| 日韩 欧美 亚洲 中文字幕| 欧美一区二区亚洲| 在线看三级毛片| 一区二区三区国产精品乱码| 好男人电影高清在线观看| 国产欧美日韩精品亚洲av| 俺也久久电影网| 亚洲国产精品久久男人天堂| 国产视频一区二区在线看| 日本 av在线| 女人十人毛片免费观看3o分钟| 国产成人欧美在线观看| 国产精品99久久久久久久久| 国产午夜精品久久久久久一区二区三区 | 老司机在亚洲福利影院| 久久精品国产亚洲av香蕉五月| 欧美日韩乱码在线| 亚洲av不卡在线观看| 欧美乱码精品一区二区三区| 免费看a级黄色片| 久久久久久国产a免费观看| 桃红色精品国产亚洲av| 99久久成人亚洲精品观看| 亚洲国产精品合色在线| 国产主播在线观看一区二区| 18美女黄网站色大片免费观看| 精品午夜福利视频在线观看一区| 手机成人av网站| 美女免费视频网站| av视频在线观看入口| 亚洲专区国产一区二区| 国产伦精品一区二区三区视频9 | 免费人成在线观看视频色| 日本成人三级电影网站| 国产真实伦视频高清在线观看 | 午夜影院日韩av| 久久久久久大精品| 国产日本99.免费观看| 午夜视频国产福利| 91久久精品电影网| a级毛片a级免费在线| 久9热在线精品视频| 最新美女视频免费是黄的| 波野结衣二区三区在线 | 99精品久久久久人妻精品| xxx96com| 两个人的视频大全免费| 成年女人永久免费观看视频| 在线观看免费午夜福利视频| 9191精品国产免费久久| 亚洲精品日韩av片在线观看 | 亚洲天堂国产精品一区在线| 亚洲成人免费电影在线观看| 国产精品久久久人人做人人爽| 99久久无色码亚洲精品果冻| 色av中文字幕| 欧美区成人在线视频| 日韩欧美一区二区三区在线观看| 精品一区二区三区视频在线 | 岛国在线免费视频观看| av黄色大香蕉| 身体一侧抽搐| 天天添夜夜摸| 欧美中文综合在线视频| 99视频精品全部免费 在线| 亚洲av美国av| 午夜激情福利司机影院| 国产伦在线观看视频一区| 2021天堂中文幕一二区在线观| 欧美一区二区亚洲| av黄色大香蕉| 久久精品人妻少妇| av在线天堂中文字幕| 欧美3d第一页| 亚洲欧美日韩东京热| 国产精品香港三级国产av潘金莲| 国产精华一区二区三区| 99久久99久久久精品蜜桃| 国产真实伦视频高清在线观看 | 精品日产1卡2卡| 99久久久亚洲精品蜜臀av| 三级国产精品欧美在线观看| 国产三级中文精品| 他把我摸到了高潮在线观看| 俄罗斯特黄特色一大片| 国产亚洲av嫩草精品影院| 成人18禁在线播放| 久久精品国产综合久久久| 亚洲专区国产一区二区| 亚洲精品一区av在线观看| 在线免费观看的www视频| 亚洲七黄色美女视频| 成年人黄色毛片网站| 婷婷丁香在线五月| 18+在线观看网站| 日本与韩国留学比较| 狠狠狠狠99中文字幕| 亚洲avbb在线观看| 两性午夜刺激爽爽歪歪视频在线观看| 黄片小视频在线播放| 久久午夜亚洲精品久久| 欧美国产日韩亚洲一区| 变态另类成人亚洲欧美熟女| 一进一出好大好爽视频| 99国产精品一区二区蜜桃av| 人妻丰满熟妇av一区二区三区| 国产极品精品免费视频能看的| 一区福利在线观看| 国内精品一区二区在线观看| 日韩欧美在线二视频| 99久国产av精品| 国产在视频线在精品| 99国产精品一区二区三区| 91久久精品电影网| 国产蜜桃级精品一区二区三区| 欧美一区二区亚洲| 亚洲人与动物交配视频| 真实男女啪啪啪动态图| 欧美绝顶高潮抽搐喷水| 国产精品久久久久久亚洲av鲁大| АⅤ资源中文在线天堂| 国模一区二区三区四区视频| www国产在线视频色| 精品久久久久久久人妻蜜臀av| 中文亚洲av片在线观看爽| 91字幕亚洲| 精品久久久久久,| 日韩成人在线观看一区二区三区| 高清日韩中文字幕在线| 99久久无色码亚洲精品果冻| 少妇的丰满在线观看| 啦啦啦韩国在线观看视频| 欧美日韩国产亚洲二区| 国产免费一级a男人的天堂| 欧美午夜高清在线| 18禁美女被吸乳视频| 国产日本99.免费观看| av专区在线播放| 全区人妻精品视频| 国产主播在线观看一区二区| а√天堂www在线а√下载| 法律面前人人平等表现在哪些方面| 精品国产超薄肉色丝袜足j| 国产三级黄色录像| 国产精品 欧美亚洲| 色哟哟哟哟哟哟| 亚洲性夜色夜夜综合| 日韩欧美在线二视频| 老汉色∧v一级毛片| 搡女人真爽免费视频火全软件 | 国产在线精品亚洲第一网站| 国产野战对白在线观看| 青草久久国产| 欧美精品啪啪一区二区三区| 黄片小视频在线播放| 非洲黑人性xxxx精品又粗又长| 日韩精品中文字幕看吧| 色综合站精品国产| 天堂影院成人在线观看| 亚洲欧美日韩无卡精品| 精品熟女少妇八av免费久了| 亚洲av二区三区四区| 免费av毛片视频| 在线观看免费午夜福利视频| 女同久久另类99精品国产91| 综合色av麻豆| 久久人妻av系列| 亚洲av成人不卡在线观看播放网| 18禁裸乳无遮挡免费网站照片| 中文字幕高清在线视频| 亚洲av美国av| 熟女少妇亚洲综合色aaa.| 身体一侧抽搐| 精品久久久久久久末码| 又黄又粗又硬又大视频| 有码 亚洲区| 国产精品久久久久久久久免 | 国产三级中文精品| 美女cb高潮喷水在线观看| 搡老熟女国产l中国老女人| 午夜免费观看网址| 精品午夜福利视频在线观看一区| 日韩精品青青久久久久久| 日韩av在线大香蕉| 中文资源天堂在线| 国产国拍精品亚洲av在线观看 | 欧美+亚洲+日韩+国产| 亚洲黑人精品在线| 国产av一区在线观看免费| 欧美高清成人免费视频www| 人妻久久中文字幕网| 亚洲av中文字字幕乱码综合| 全区人妻精品视频| 黄色女人牲交| 欧美成人一区二区免费高清观看| 亚洲久久久久久中文字幕| 激情在线观看视频在线高清| 最新中文字幕久久久久| 亚洲av熟女| 成熟少妇高潮喷水视频| 日本熟妇午夜| 丁香欧美五月| 国产高清有码在线观看视频| 91麻豆av在线| 成人国产综合亚洲| 亚洲美女视频黄频| 无人区码免费观看不卡| 国产午夜福利久久久久久| 18禁美女被吸乳视频| 免费观看精品视频网站| 黄片小视频在线播放| 狂野欧美激情性xxxx| 两个人的视频大全免费| 黄片大片在线免费观看| 一个人看的www免费观看视频| 亚洲av电影在线进入| 国产高清videossex| 国产三级在线视频| 51国产日韩欧美| 在线a可以看的网站| 深爱激情五月婷婷| a级一级毛片免费在线观看| 99久久精品热视频| 精品99又大又爽又粗少妇毛片 | 色综合婷婷激情| 宅男免费午夜| 99久久综合精品五月天人人| 午夜免费成人在线视频| bbb黄色大片| 欧美日韩综合久久久久久 | 免费看a级黄色片| 欧美成狂野欧美在线观看| 亚洲va日本ⅴa欧美va伊人久久| 亚洲av成人av| 色尼玛亚洲综合影院| 午夜免费成人在线视频| 在线观看免费午夜福利视频| 身体一侧抽搐| 国产亚洲av嫩草精品影院| 日韩精品中文字幕看吧| 亚洲av电影在线进入| 亚洲av成人精品一区久久| 国产精品香港三级国产av潘金莲| 久久草成人影院| 日本免费一区二区三区高清不卡| 久久午夜亚洲精品久久| 夜夜看夜夜爽夜夜摸| 久久6这里有精品| 色综合婷婷激情| 亚洲18禁久久av| 法律面前人人平等表现在哪些方面| 免费看a级黄色片| 久久久国产成人免费| 亚洲专区国产一区二区| 日日干狠狠操夜夜爽| 欧美高清成人免费视频www| 亚洲国产欧洲综合997久久,| 九色国产91popny在线| 国产精品香港三级国产av潘金莲| 99久久综合精品五月天人人| 美女大奶头视频| 少妇人妻精品综合一区二区 | 国产乱人视频| 国产欧美日韩一区二区精品| 中文亚洲av片在线观看爽| 亚洲欧美日韩卡通动漫| 成人高潮视频无遮挡免费网站| 亚洲无线在线观看| 怎么达到女性高潮| 国产高清视频在线观看网站| 两个人看的免费小视频| 精品乱码久久久久久99久播| 国产在视频线在精品| 欧美bdsm另类| 成熟少妇高潮喷水视频| 村上凉子中文字幕在线| 国产日本99.免费观看| 老熟妇仑乱视频hdxx| 国产成人影院久久av| 757午夜福利合集在线观看| 亚洲av电影在线进入| 成人一区二区视频在线观看| 亚洲熟妇熟女久久| 免费在线观看日本一区| 亚洲av免费在线观看| 法律面前人人平等表现在哪些方面| 日韩成人在线观看一区二区三区| 日本黄色片子视频| av中文乱码字幕在线| 精品一区二区三区视频在线 | 久久久久性生活片| 午夜福利高清视频| 国产成人aa在线观看| 亚洲电影在线观看av| 色精品久久人妻99蜜桃| 久久国产精品影院| 日韩高清综合在线| 午夜两性在线视频| 午夜福利视频1000在线观看| 精品国产亚洲在线| 午夜福利视频1000在线观看| 久久精品91蜜桃| 国产极品精品免费视频能看的| 欧美成人a在线观看| 亚洲最大成人中文| 欧美成人性av电影在线观看| 天堂网av新在线| 波多野结衣高清无吗| 亚洲精品一卡2卡三卡4卡5卡| 亚洲国产精品999在线| 18禁美女被吸乳视频| 亚洲不卡免费看| 久久精品91蜜桃| 床上黄色一级片| 欧美黄色淫秽网站| 麻豆成人av在线观看| 国产一区二区激情短视频| 久久草成人影院| 人妻夜夜爽99麻豆av| 最近最新中文字幕大全免费视频| 国产 一区 欧美 日韩| 亚洲av成人不卡在线观看播放网| 老鸭窝网址在线观看| 日日摸夜夜添夜夜添小说| 国产一区在线观看成人免费| tocl精华| 日本熟妇午夜| 哪里可以看免费的av片| 午夜福利成人在线免费观看| 身体一侧抽搐| 狠狠狠狠99中文字幕| 日日摸夜夜添夜夜添小说| av欧美777| 午夜激情福利司机影院| 午夜两性在线视频| 最近最新中文字幕大全免费视频| 欧美不卡视频在线免费观看| 午夜福利在线观看吧| 激情在线观看视频在线高清| 色精品久久人妻99蜜桃| 午夜两性在线视频| 成年人黄色毛片网站| 在线天堂最新版资源| 在线观看午夜福利视频| 日本黄色视频三级网站网址| 麻豆国产av国片精品| 老汉色∧v一级毛片| 最近在线观看免费完整版| av在线蜜桃| 麻豆成人午夜福利视频| 日韩免费av在线播放| 18禁黄网站禁片午夜丰满| 精品人妻偷拍中文字幕| av片东京热男人的天堂| 日韩欧美精品v在线| 欧美丝袜亚洲另类 | 一本综合久久免费| 欧美成人性av电影在线观看| 黄色日韩在线| 给我免费播放毛片高清在线观看| 人妻夜夜爽99麻豆av| 别揉我奶头~嗯~啊~动态视频| 日韩欧美 国产精品| 亚洲人成电影免费在线| 日本五十路高清| 日本黄色片子视频| 少妇丰满av| 内地一区二区视频在线| 91麻豆精品激情在线观看国产| 最近最新中文字幕大全电影3| 久久久久久久久久黄片| 国产探花在线观看一区二区| 久久久国产精品麻豆| 亚洲午夜理论影院| 亚洲七黄色美女视频| 激情在线观看视频在线高清| 中亚洲国语对白在线视频| 免费av不卡在线播放| 日韩欧美精品免费久久 | 在线免费观看的www视频| 国产色爽女视频免费观看| 天堂动漫精品| 中文字幕av在线有码专区| 午夜福利免费观看在线| 一个人看视频在线观看www免费 | 99久久久亚洲精品蜜臀av| 女警被强在线播放| av中文乱码字幕在线| 久久草成人影院| 久久精品夜夜夜夜夜久久蜜豆| 黄色丝袜av网址大全| 岛国视频午夜一区免费看| 国产探花在线观看一区二区| 天天添夜夜摸| 国产精品国产高清国产av| 18美女黄网站色大片免费观看| 亚洲 欧美 日韩 在线 免费| 午夜精品在线福利| 国产精品久久久久久亚洲av鲁大| 99久国产av精品| 热99在线观看视频| 亚洲第一电影网av| 亚洲熟妇中文字幕五十中出| 亚洲国产欧美网| 少妇裸体淫交视频免费看高清| 岛国在线观看网站| 男插女下体视频免费在线播放| 三级国产精品欧美在线观看| 欧美色欧美亚洲另类二区| 一级a爱片免费观看的视频| 99热这里只有精品一区| 88av欧美| 在线播放无遮挡| 日本免费a在线| www日本在线高清视频| 免费人成视频x8x8入口观看| 久久精品91蜜桃| 可以在线观看的亚洲视频| 欧美又色又爽又黄视频| 欧美另类亚洲清纯唯美| 国产成年人精品一区二区| 麻豆一二三区av精品| 欧美性猛交╳xxx乱大交人| 两性午夜刺激爽爽歪歪视频在线观看| 日本免费a在线| 中文资源天堂在线| 欧美又色又爽又黄视频| 亚洲激情在线av| 少妇的丰满在线观看| 一进一出抽搐gif免费好疼| 午夜福利在线观看吧| 精品福利观看| 男女之事视频高清在线观看| 一本综合久久免费| 免费看美女性在线毛片视频| 免费一级毛片在线播放高清视频| 精品福利观看| 国内精品美女久久久久久| 给我免费播放毛片高清在线观看| 亚洲av成人不卡在线观看播放网| 国产精品久久久久久久久免 | 村上凉子中文字幕在线| 在线播放国产精品三级| 亚洲内射少妇av| 国产成+人综合+亚洲专区| 嫩草影院入口| 国产爱豆传媒在线观看| 婷婷丁香在线五月| 99精品欧美一区二区三区四区| 成人精品一区二区免费| 亚洲七黄色美女视频| 九九在线视频观看精品| 国产麻豆成人av免费视频| 亚洲成人中文字幕在线播放| 九色国产91popny在线| 久久久国产精品麻豆| 欧美精品啪啪一区二区三区| 亚洲最大成人手机在线| 国产av在哪里看| 亚洲精品乱码久久久v下载方式 | 伊人久久精品亚洲午夜| www.www免费av| 在线观看av片永久免费下载| 成熟少妇高潮喷水视频| 亚洲熟妇中文字幕五十中出| 又黄又粗又硬又大视频| 男人的好看免费观看在线视频| 亚洲专区中文字幕在线| 熟女少妇亚洲综合色aaa.| 欧美黑人欧美精品刺激| 国产精品亚洲美女久久久| 中亚洲国语对白在线视频| 国产精品综合久久久久久久免费| 国产精品亚洲av一区麻豆| 午夜免费观看网址| netflix在线观看网站| 国产精品 国内视频| 91久久精品电影网| 色av中文字幕| 少妇的逼好多水| 免费看光身美女| 97超级碰碰碰精品色视频在线观看| 久久精品夜夜夜夜夜久久蜜豆| 人妻丰满熟妇av一区二区三区| 偷拍熟女少妇极品色| 三级男女做爰猛烈吃奶摸视频| 国产美女午夜福利| 亚洲片人在线观看| 可以在线观看毛片的网站| 欧美成人性av电影在线观看| 麻豆久久精品国产亚洲av| 女人被狂操c到高潮| 国产精品免费一区二区三区在线| 亚洲成av人片在线播放无| 亚洲国产精品成人综合色| 麻豆久久精品国产亚洲av| 狂野欧美激情性xxxx| 亚洲av美国av| 内射极品少妇av片p| 亚洲五月婷婷丁香| 人人妻人人澡欧美一区二区| 国产aⅴ精品一区二区三区波| a级毛片a级免费在线| 在线观看舔阴道视频| 超碰av人人做人人爽久久 | 少妇丰满av| 国内久久婷婷六月综合欲色啪| 免费av毛片视频| 精品一区二区三区av网在线观看| 国产成人福利小说| 啦啦啦观看免费观看视频高清| 免费高清视频大片| 脱女人内裤的视频| 变态另类丝袜制服| 色综合婷婷激情| 听说在线观看完整版免费高清| 国产成+人综合+亚洲专区| 在线观看美女被高潮喷水网站 | 啦啦啦韩国在线观看视频| or卡值多少钱| 亚洲va日本ⅴa欧美va伊人久久| 亚洲国产精品成人综合色| 一级黄色大片毛片| 欧美乱妇无乱码| 悠悠久久av| aaaaa片日本免费| 亚洲国产精品sss在线观看| 一卡2卡三卡四卡精品乱码亚洲| 国产精品久久久久久精品电影| 国产色婷婷99| 亚洲无线在线观看| 成人高潮视频无遮挡免费网站| 国模一区二区三区四区视频| 亚洲精品在线美女| 国产真实乱freesex| 婷婷精品国产亚洲av在线| 国产麻豆成人av免费视频| 最好的美女福利视频网| 国产69精品久久久久777片| 亚洲美女黄片视频| 欧美一级毛片孕妇| 久久99热这里只有精品18| 欧美大码av| 18禁国产床啪视频网站| 国产 一区 欧美 日韩| 深夜精品福利| 免费观看精品视频网站| 国产三级黄色录像| 国产亚洲精品av在线| 亚洲av一区综合| 国内精品一区二区在线观看| 最后的刺客免费高清国语| 麻豆久久精品国产亚洲av| 国产中年淑女户外野战色| 亚洲精品日韩av片在线观看 | 成人国产综合亚洲| 欧美成人一区二区免费高清观看| 亚洲一区二区三区色噜噜| 美女 人体艺术 gogo| 亚洲国产精品sss在线观看| 亚洲国产精品久久男人天堂| 深夜精品福利| 亚洲国产欧美网| 两个人视频免费观看高清| 亚洲人成网站在线播放欧美日韩| 日韩亚洲欧美综合| av天堂在线播放| 欧美另类亚洲清纯唯美| 97超视频在线观看视频| 少妇的逼水好多| av视频在线观看入口| 亚洲电影在线观看av| 日本撒尿小便嘘嘘汇集6| 久久亚洲精品不卡| 精品久久久久久久久久免费视频| 久久久久久国产a免费观看| 99国产精品一区二区三区| ponron亚洲| 黄色片一级片一级黄色片| 色噜噜av男人的天堂激情| 国产成人av激情在线播放| 极品教师在线免费播放| 国产精品1区2区在线观看.| 亚洲欧美日韩高清专用| 男人舔奶头视频|